Surface participation and dielectric loss in superconducting qubits
暂无分享,去创建一个
Luigi Frunzio | Michel H. Devoret | Robert J. Schoelkopf | Christopher Axline | Yvonne Y Gao | L. Frunzio | R. Schoelkopf | M. Devoret | Chen Wang | C. Axline | T. Brecht | Chen Wang | Yvonne Y. Gao | Teresa Brecht
[1] C. Lobb,et al. A Josephson junction defect spectrometer for measuring two-level systems , 2012, 1203.4431.
[2] Matthew Neeley,et al. Lifetime and coherence of two-level defects in a Josephson junction. , 2010, Physical review letters.
[3] L. DiCarlo,et al. Reducing intrinsic loss in superconducting resonators by surface treatment and deep etching of silicon substrates , 2015, 1502.04082.
[4] S. Girvin,et al. Charge-insensitive qubit design derived from the Cooper pair box , 2007, cond-mat/0703002.
[5] S. Girvin,et al. Observation of high coherence in Josephson junction qubits measured in a three-dimensional circuit QED architecture. , 2011, Physical review letters.
[6] S. Poletto,et al. Detecting bit-flip errors in a logical qubit using stabilizer measurements , 2014, Nature Communications.
[7] J. Gambetta,et al. Superconducting qubit in a waveguide cavity with a coherence time approaching 0.1 ms , 2012, 1202.5533.
[8] Antonio Corcoles,et al. Protecting superconducting qubits from radiation , 2011 .
[9] Liang Jiang,et al. Cavity State Manipulation Using Photon-Number Selective Phase Gates. , 2015, Physical review letters.
[10] R. Schoelkopf,et al. Superconducting Circuits for Quantum Information: An Outlook , 2013, Science.
[11] R. N. Schouten,et al. Millisecond charge-parity fluctuations and induced decoherence in a superconducting transmon qubit , 2012, Nature Communications.
[12] Jens Koch,et al. Suppressing Charge Noise Decoherence in Superconducting Charge Qubits , 2007, 0712.3581.
[13] Jens Koch,et al. Controlling the spontaneous emission of a superconducting transmon qubit. , 2008, Physical review letters.
[14] R. J. Schoelkopf,et al. Improving the quality factor of microwave compact resonators by optimizing their geometrical parameters , 2011, 1204.0742.
[15] Michael E. Tobar,et al. High Q-factor sapphire whispering gallery mode microwave resonator at single photon energies and millikelvin temperatures , 2011, 1103.6094.
[16] Yvonne Y Gao,et al. Non-Poissonian quantum jumps of a fluxonium qubit due to quasiparticle excitations. , 2014, Physical review letters.
[17] W. Oliver,et al. Study of loss in superconducting coplanar waveguide resonators , 2010, 1010.6063.
[18] Martin V. Gustafsson,et al. Propagating phonons coupled to an artificial atom , 2014, Science.
[19] F. Wellstood,et al. Cavity quantum electrodynamics using a near-resonance two-level system: Emergence of the Glauber state , 2014, 1405.0264.
[20] Yvonne Y Gao,et al. Measurement and control of quasiparticle dynamics in a superconducting qubit , 2014, Nature Communications.
[21] M. Weides,et al. Etch induced microwave losses in titanium nitride superconducting resonators , 2012, 1205.3153.
[22] Erik Lucero,et al. Surface loss simulations of superconducting coplanar waveguide resonators , 2011, 1107.4698.
[23] R. Barends,et al. Coherent Josephson qubit suitable for scalable quantum integrated circuits. , 2013, Physical review letters.
[24] M. Weides,et al. Improving the Coherence Time of Superconducting Coplanar Resonators , 2009, 0909.0547.
[25] Clare C. Yu,et al. Decoherence in Josephson qubits from dielectric loss. , 2005, Physical review letters.
[26] Pierre Blondy,et al. Microwave and millimeter-wave high- Q micromachined resonators , 1999 .
[27] L. Ioffe,et al. Decoherence in superconducting quantum bits by phonon radiation. , 2004, Physical review letters.
[28] Andrew W. Cross,et al. Implementing a strand of a scalable fault-tolerant quantum computing fabric , 2013, Nature Communications.
[29] Jay M. Gambetta,et al. Improved superconducting qubit coherence using titanium nitride , 2013, 1303.4071.
[30] C. Musgrave,et al. Bulk and surface tunneling hydrogen defects in alumina. , 2013, Physical review letters.
[31] E. Lucero,et al. Planar Superconducting Resonators with Internal Quality Factors above One Million , 2012, 1201.3384.
[32] Jonas Zmuidzinas,et al. Experimental evidence for a surface distribution of two-level systems in superconducting lithographed microwave resonators , 2008, 0802.4457.
[33] A. Ustinov,et al. Strain Tuning of Individual Atomic Tunneling Systems Detected by a Superconducting Qubit , 2012, Science.
[34] John M. Martinis,et al. State preservation by repetitive error detection in a superconducting quantum circuit , 2015, Nature.